arXiv:2604.07435·v1·High Energy Physics — Lattice
Observation of glueball excitations and string breaking in a D lattice gauge theory on a trapped-ion quantum computer
Kaidi Xu🇩🇪 · Umberto Borla🇩🇪 · Kevin Hemery🇩🇪 · Rohan Joshi🇩🇪 · Henrik Dreyer🇩🇪 · Enrico Rinaldi🇬🇧 · Jad C. Halimeh🇩🇪
Abstract
A major goal of the quantum simulation of high-energy physics (HEP) is to probe real-time nonperturbative far-from-equilibrium quantum processes underlying phenomena such as hadronization in quantum chromodynamics (QCD). The quantum simulation of the dynamics of confining strings and glueballs, both essential aspects of quark confinement, in a controllable first-principles way is an important step towards this goal. Here, we realize a lattice gauge theory in D with a tunable plaquette term on a \texttt{Quantinuum System Model H2} trapped-ion quantum computer. We implement a shallow depth-6 Trotter circuit on a matter-site square lattice utilizing all available qubits to execute over entangling gates. We prepare far-from-equilibrium initial string configurations that we quench across a range of parameters to observe rich dynamical phenomena, such as the formation of gauge-invariant closed-loop excitations reminiscent of glueballs in QCD and multi-order string breaking accompanied by spontaneous matter creation. We further demonstrate experimentally that the system displays genuine D dynamics, as evidenced by string snapshots over time that cannot be trivially mapped to D physics. Our results demonstrate digital quantum simulations of nonequilibrium dynamics in a higher-dimensional lattice gauge theory and provide an experimentally accessible setting for phenomena related to confinement physics.
Comments: pages, figures, table. See parallel submission by R. Joshi et al., "Observation of genuine D string dynamics in a U lattice gauge theory with a tunable plaquette term on a trapped-ion quantum computer''